128

How can I see what's inside a bucket in S3 with boto3? (i.e. do an "ls")?

Doing the following:

import boto3
s3 = boto3.resource('s3')
my_bucket = s3.Bucket('some/path/')

returns:

s3.Bucket(name='some/path/')

How do I see its contents?

165

One way to see the contents would be:

for my_bucket_object in my_bucket.objects.all():
    print(my_bucket_object)
  • 1
    can i fetch the keys under particular path in bucket or with particular delimiter using boto3?? – Rahul KP Dec 14 '15 at 11:44
  • 74
    You should be able to say mybucket.objects.filter(Prefix='foo/bar') and it will only list objects with that prefix. You can also pass a Delimiter parameter. – garnaat Dec 14 '15 at 12:53
  • 3
    not working with boto3 AttributeError: 'S3' object has no attribute 'objects' – Shek Jun 30 '17 at 17:45
  • 2
    @garnaat Your comment mentioning that filter method really helped me (my code ended up much simpler and faster) - thank you! – Edward Dixon Aug 2 '17 at 16:25
  • 18
    I would advise against using object as a variable name as it will shadow the global type object. – oliland May 8 '18 at 10:28
78

This is similar to an 'ls' but it does not take into account the prefix folder convention and will list the objects in the bucket. It's left up to the reader to filter out prefixes which are part of the Key name.

In Python 2:

from boto.s3.connection import S3Connection

conn = S3Connection() # assumes boto.cfg setup
bucket = conn.get_bucket('bucket_name')
for obj in bucket.get_all_keys():
    print(obj.key)

In Python 3:

from boto3 import client

conn = client('s3')  # again assumes boto.cfg setup, assume AWS S3
for key in conn.list_objects(Bucket='bucket_name')['Contents']:
    print(key['Key'])
  • 36
    If you want to use the prefix as well, you can do it like this: conn.list_objects(Bucket='bucket_name', Prefix='prefix_string')['Contents'] – markonovak Mar 21 '16 at 13:14
  • 10
    This only lists the first 1000 keys. From the docstring: "Returns some or all (up to 1000) of the objects in a bucket." Also, it is recommended that you use list_objects_v2 instead of list_objects (although, this also only returns the first 1000 keys). – Brett Widmeier Mar 21 '18 at 14:18
  • This limitation should be dealt with using Paginators – v25 Mar 20 at 19:21
26

I'm assuming you have configured authentication separately.

import boto3
s3 = boto3.resource('s3')

my_bucket = s3.Bucket('bucket_name')

for file in my_bucket.objects.all():
    print file.key
22

If you want to pass the ACCESS and SECRET keys (which you should not do, because it is not secure):

from boto3.session import Session

ACCESS_KEY='your_access_key'
SECRET_KEY='your_secret_key'

session = Session(aws_access_key_id=ACCESS_KEY,
                  aws_secret_access_key=SECRET_KEY)
s3 = session.resource('s3')
your_bucket = s3.Bucket('your_bucket')

for s3_file in your_bucket.objects.all():
    print(s3_file.key)
  • 9
    This is less secure than having a credentials file at ~/.aws/credentials. Though it is a valid solution. – nu everest Dec 27 '17 at 0:32
  • 3
    This would require committing secrets to source control. Not good. – jan groth Dec 7 '18 at 1:41
  • 1
    This answer adds nothing regarding the API / mechanics of listing objects while adding a non relevant authentication method which is common for all boto resources and is a bad practice security wise – Froyke May 23 at 16:00
  • Added a disclaimer to the answer about security. – rjurney May 24 at 0:26
14

In order to handle large key listings (i.e. when the directory list is greater than 1000 items), I used the following code to accumulate key values (i.e. filenames) with multiple listings (thanks to Amelio above for the first lines). Code is for python3:

    from boto3  import client
    bucket_name = "my_bucket"
    prefix      = "my_key/sub_key/lots_o_files"

    s3_conn   = client('s3')  # type: BaseClient  ## again assumes boto.cfg setup, assume AWS S3
    s3_result =  s3_conn.list_objects_v2(Bucket=bucket_name, Prefix=prefix, Delimiter = "/")

    if 'Contents' not in s3_result:
        #print(s3_result)
        return []

    file_list = []
    for key in s3_result['Contents']:
        file_list.append(key['Key'])
    print(f"List count = {len(file_list)}")

    while s3_result['IsTruncated']:
        continuation_key = s3_result['NextContinuationToken']
        s3_result = s3_conn.list_objects_v2(Bucket=bucket_name, Prefix=prefix, Delimiter="/", ContinuationToken=continuation_key)
        for key in s3_result['Contents']:
            file_list.append(key['Key'])
        print(f"List count = {len(file_list)}")
    return file_list
7

My s3 keys utility function is essentially an optimized version of @Hephaestus's answer:

import boto3


s3_paginator = boto3.client('s3').get_paginator('list_objects_v2')


def keys(bucket_name, prefix='/', delimiter='/', start_after=''):
    prefix = prefix[1:] if prefix.startswith(delimiter) else prefix
    start_after = (start_after or prefix) if prefix.endswith(delimiter) else start_after
    for page in s3_paginator.paginate(Bucket=bucket_name, Prefix=prefix, StartAfter=start_after):
        for content in page.get('Contents', ()):
            yield content['Key']

In my tests (boto3 1.9.84), it's significantly faster than the equivalent (but simpler) code:

import boto3


def keys(bucket_name, prefix='/', delimiter='/'):
    prefix = prefix[1:] if prefix.startswith(delimiter) else prefix
    bucket = boto3.resource('s3').Bucket(bucket_name)
    return (_.key for _ in bucket.objects.filter(Prefix=prefix))

As S3 guarantees UTF-8 binary sorted results, a start_after optimization has been added to the first function.

5

A more parsimonious way, rather than iterating through via a for loop you could also just print the original object containing all files inside your S3 bucket:

session = Session(aws_access_key_id=aws_access_key_id,aws_secret_access_key=aws_secret_access_key)
s3 = session.resource('s3')
bucket = s3.Bucket('bucket_name')

files_in_s3 = bucket.objects.all() 
#you can print this iterable with print(list(files_in_s3))
  • 1
    @petezurich , can you please explain why such a petty edit of my answer - replacing an “a” with a capital “A” at the beginning of my answer brought down my reputation by -2 , however I reckon both you and I can agree that not only is your correction NOT Relevant at all, but actually rather petty, wouldn’t you say so? Please focus on the content rather than childish revisions , most obliged ol’boy – Daniel Vieira Aug 23 '18 at 13:41
  • These were two different interactions. 1. I edited your answer which is recommended even for minor misspellings. I agree, that the boundaries between minor and trivial are ambiguous. I do not downvote any post because I see errors and I didn't in this case. I simply fix all the errors that I see. – petezurich Aug 23 '18 at 14:26
  • 2. I downvoted your answer because you wrote that files_in_s3is a "list object". There is no such thing in Python. It rather is an iterable and I couldn't make your code work and therefore downvoted. Than I found the error and saw your point but couldn't undo my downvote. – petezurich Aug 23 '18 at 14:29
  • I now have edited your answer again and could undo the downvote. Feel free to reedit. – petezurich Aug 23 '18 at 14:30
  • 3
    @petezurich no problem , understood your , point , just one thing, in Python a list IS an object because pretty much everything in python is an object , then it also follows that a list is also an iterable, but first and foremost , it’s an object! that is why I did not understand your downvote- you were down voting something that was correct and code that works. Anyway , thanks for your apology and all the best – Daniel Vieira Aug 23 '18 at 19:02
2

ObjectSummary:

There are two identifiers that are attached to the ObjectSummary:

  • bucket_name
  • key

boto3 S3: ObjectSummary

More on Object Keys from AWS S3 Documentation:

Object Keys:

When you create an object, you specify the key name, which uniquely identifies the object in the bucket. For example, in the Amazon S3 console (see AWS Management Console), when you highlight a bucket, a list of objects in your bucket appears. These names are the object keys. The name for a key is a sequence of Unicode characters whose UTF-8 encoding is at most 1024 bytes long.

The Amazon S3 data model is a flat structure: you create a bucket, and the bucket stores objects. There is no hierarchy of subbuckets or subfolders; however, you can infer logical hierarchy using key name prefixes and delimiters as the Amazon S3 console does. The Amazon S3 console supports a concept of folders. Suppose that your bucket (admin-created) has four objects with the following object keys:

Development/Projects1.xls

Finance/statement1.pdf

Private/taxdocument.pdf

s3-dg.pdf

Reference:

AWS S3: Object Keys

Here is some example code that demonstrates how to get the bucket name and the object key.

Example:

import boto3
from pprint import pprint

def main():

    def enumerate_s3():
        s3 = boto3.resource('s3')
        for bucket in s3.buckets.all():
             print("Name: {}".format(bucket.name))
             print("Creation Date: {}".format(bucket.creation_date))
             for object in bucket.objects.all():
                 print("Object: {}".format(object))
                 print("Object bucket_name: {}".format(object.bucket_name))
                 print("Object key: {}".format(object.key))

    enumerate_s3()


if __name__ == '__main__':
    main()
1

I just did it like this, including the authentication method:

s3_client = boto3.client(
                's3',
                aws_access_key_id='access_key',
                aws_secret_access_key='access_key_secret',
                config=boto3.session.Config(signature_version='s3v4'),
                region_name='region'
            )

response = s3_client.list_objects(Bucket='bucket_name', Prefix=key)
if ('Contents' in response):
    # Object / key exists!
    return True
else:
    # Object / key DOES NOT exist!
    return False

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